The present invention provides a thermal management and automatic fire-extinguishing system of a vehicle battery, used for managing the vehicle battery in a hybrid vehicle or an electric vehicle, including: fire-extinguishing packages which are adjacent to or in contact with the vehicle battery, wherein the fire-extinguishing package is filled with a fire-extinguishing agent; and the fire-extinguishing package is configured to be opened when the temperature of the vehicle battery is higher than a preset temperature, so that the fire-extinguishing agent can be released and then filled into a space where the vehicle battery is located, thereby achieving the effects of automatic combustion prevention and fire extinguishing of the vehicle battery, effectively protecting the vehicle battery and the whole vehicle, reserving more escape time for passengers and improving the safety of the vehicle. On the whole, the thermal management and automatic fire-extinguishing system of the vehicle battery of the present invention is simple and reliable in structure, low in cost and strong in universality, and can be directly mounted on the vehicle without reforming the existing vehicle battery cooling system.
|
1. A thermal management and automatic fire-extinguishing system of a vehicle battery, used for managing the vehicle battery in a hybrid vehicle or an electric vehicle, comprising:
fire-extinguishing packages which are disposed adjacent to or in contact with the vehicle battery, and filled with a fire-extinguishing agent;
wherein the fire-extinguishing packages are configured to be opened when the temperature of the vehicle battery is higher than a preset temperature, so that the fire-extinguishing agent can be released and then filled into a space where the vehicle battery is located;
wherein the fire-extinguishing packages comprise an upper fire-extinguishing package and a lower fire-extinguishing package, the upper fire-extinguishing package wholly covers the upper surface of each vehicle battery or a battery module composed of the vehicle batteries, and the lower fire-extinguishing package wholly covers the lower surface of each vehicle battery or the battery module composed of the vehicle batteries;
wherein the upper fire-extinguishing package and the lower fire-extinguishing package are communicated with each other;
wherein the upper fire-extinguishing package is connected with a pump in parallel, the fire-extinguishing agent in the upper fire-extinguishing package, which is pumped by the pump, can heat or cool the battery module, and the lower fire-extinguishing package is connected with the pump in parallel, and the fire-extinguishing agent in the lower fire-extinguishing package, which is pumped by the pump, can heat or cool the battery module; and
wherein the system further comprises an upper cover and a lower cover, which are disposed at a battery package box body, the upper fire-extinguishing package is directly connected between the battery module and the upper cover, and the lower fire-extinguishing package is directly connected between the battery module and the lower cover.
2. The system of
3. The system of
4. The system of
6. The system of
7. The system of
|
The present invention relates to a vehicle battery protection technology in hybrid vehicles or electric vehicles, particularly to a thermal management and automatic fire-extinguishing system of a vehicle battery.
For vehicles of which the power is all or partially provided by vehicle batteries, for example, pure electric vehicles or some types of hybrid vehicles, high capacity vehicle batteries generally need to be arranged in the vehicles to provide enough instantaneous power and endurance mileages as long as possible.
The vehicle battery will generate heat at work, an over high temperature will directly influence the working performance and the service life of the batteries, and even generates overheating, electrolyte overflow, fire, explosion and other potential safety accident hazards. In order to ensure the safety of the vehicle battery, vehicle and battery manufacturers spare no effort to adopt various measures, for example, the design of various anti-collision structures, the selection of flame retardant materials, the arrangement of the vehicle battery in a relatively safe position and the safety protection of the vehicle battery based on control strategies. However, once the vehicle battery is on fire, the above measures are basically invalid. Therefore, when the vehicle battery is in danger, how to ensure the safety of the vehicle battery and the vehicle to provide enough escape time for passengers and the like is particularly important.
A relatively good solution is to arrange a cooling system for cooling the vehicle battery, and use the cooling system to extinguish fire in the case of overheat and fire of the vehicle battery resulting from collision or short circuit or some other incompletely controllable reasons. As to this solution, however, cooling liquid of the cooling system needs to simultaneously have the cooling effect and the fire-extinguishing function on the vehicle battery, so that the requirements on the material of the cooling liquid are relatively high. Moreover, if the cooling system simultaneously has the cooling effect and the fire-extinguishing function on the vehicle battery, the existing cooling system needs to be reformed, thereby resulting in that the overall solution is relatively complicated.
The object of the present invention is to provide a thermal management and automatic fire-extinguishing technology of vehicle batteries, which is a simple and convenient solution.
Particularly, the present invention provides a thermal management and automatic fire-extinguishing system of a vehicle battery, used for managing the vehicle battery in a hybrid vehicle or an electric vehicle, including:
fire-extinguishing package(s) adjacent to or in contact with the vehicle battery, and filled with a fire-extinguishing agent; and
wherein the fire-extinguishing package is configured to be opened when the temperature of the vehicle battery is higher than a preset temperature, so that the fire-extinguishing agent can be released out and then filled into a space where the vehicle battery is located.
Further, the fire-extinguishing packages includes an upper fire-extinguishing package and a lower fire-extinguishing package, wherein the upper fire-extinguishing package covers on the upper surface of each vehicle battery and a battery module composed of the vehicle batteries, and the lower fire-extinguishing package covers on the lower surface of each vehicle battery and the battery module composed of the vehicle batteries.
Further, the material of at least a part of the upper fire-extinguishing package is plastic or resin, and when the temperature of the vehicle battery is higher than the preset temperature, the at least a part of the upper fire-extinguishing package is heated by the vehicle battery into a fluid state, so that the fire-extinguishing agent can be released out and then filled into the space where the vehicle battery is located.
Further, the melting point of the material of the at least a part of the upper fire-extinguishing package is selected within a range of 85-95° C., and the melting point of the material of the lower fire-extinguishing package is higher than the melting point of the material of the at least a part.
Further, the upper fire-extinguishing package and the lower fire-extinguishing package are communicated with each other, and the upper fire-extinguishing package is connected with a pump in parallel, and the fire-extinguishing agent in the upper fire-extinguishing package can be pumped by the pump so as to heat or cool the battery module; and the lower fire-extinguishing package is connected with the pump in parallel, and the fire-extinguishing agent in the lower fire-extinguishing package can be pumped by the pump so as to heat or cool the battery module.
Further, the plastic is EVA plastic, and the resin is an ABS/PC alloy.
Further, the fire-extinguishing agent is silicone oil or transformer oil.
Further, the thermal management and automatic fire-extinguishing system of the vehicle battery further includes an upper cover and a lower cover, which are deployed at a battery package box body. When the upper cover is opened, the upper fire-extinguishing package can be put to cover on the battery module or be detached away from the battery module, and when the lower cover is opened, the lower fire-extinguishing package can be put to cover on the battery module or be detached away from the battery module.
Further, the thermal management and automatic fire-extinguishing system of the vehicle battery further includes an insulating layer arranged on a circuit connecting plate between the battery modules and/or on a connecting wire between the battery modules and electric elements.
Further, the insulating layer is made of acrylic resin.
According to the thermal management and automatic fire-extinguishing system of the vehicle battery of the present invention, when the temperature of the vehicle battery is higher than the preset temperature, the fire-extinguishing package will be opened, so that the fire-extinguishing agent filled in the fire-extinguishing package can be released out and then filled into the space where the vehicle battery is located. In this way, when the vehicle battery is on fire and burnt due to collision, short circuit or other abnormal reasons, the fire-extinguishing agent in the fire-extinguishing package can be released and then filled into the space where the vehicle battery is located to extinguish the fire, thereby achieving the effects of automatic combustion prevention and fire extinguishing of the vehicle battery, effectively protecting the vehicle battery and the whole vehicle, reserving more escape time for passengers and improving the safety of the vehicle. On the whole, the thermal management and automatic fire-extinguishing system of the vehicle battery of the present invention is simple and reliable in structure, low in cost and strong in universality, and can be directly mounted on the vehicle without reforming the existing vehicle battery cooling system. According to the thermal management and automatic fire-extinguishing system of the vehicle battery of the present invention, further, the fire-extinguishing packages are arranged on the upper and lower surfaces of the vehicle battery or the battery module, and besides the fire-extinguishing function provided by the fire-extinguishing agent in the fire-extinguishing package, the fire-extinguishing packages themselves can fix or buffer the vehicle battery or the battery module.
According to the thermal management and automatic fire-extinguishing system of the vehicle battery of the present invention, further, the upper fire-extinguishing package and the lower fire-extinguishing package covering on the upper and lower surfaces of the battery module can not only play a fire-extinguishing function, moreover, since the upper fire-extinguishing package and the lower fire-extinguishing package are connected with the pump in parallel, the fire-extinguishing agent in the upper fire-extinguishing package and the lower fire-extinguishing package can regulate the temperature of the vehicle battery or the battery module together by means of the pumping of the pumps, so as to heat or cool the battery module to an appropriate working temperature. Moreover, due to the parallel connection mode, even if the fire-extinguishing agent in a few upper fire-extinguishing package or lower fire-extinguishing package flows out due to unexpected crack of packages, the fire-extinguishing and temperature regulation functions of other fire-extinguishing packages are not interrupted. Moreover, according to demand, when the upper fire-extinguishing package can play an enough upper fire-extinguishing function, the lower fire-extinguishing package can only play the temperature regulation function and does not need to crack to release the fire-extinguishing agent, and in this situation, the requirements on the material of the lower fire-extinguishing package can be greatly reduced.
A detailed description of specific embodiments of the present invention will be given below in combination with drawings, and thus those skilled in the art will better understand the above and other purposes, advantages and features of the present invention.
Some specific embodiments of the present invention will be described below exemplarily rather than restrictively with reference to drawings. Identical reference signs in the drawings refer to identical or similar components or parts. Those skilled in the art should understand that, these drawings are not necessarily drawn to scale. In the drawings:
The embodiment of the present invention provides a thermal management and automatic fire-extinguishing system of a vehicle battery 10, used for managing the vehicle battery 10 in a hybrid vehicle or an electric vehicle. The thermal management and automatic fire-extinguishing system of the vehicle battery includes fire-extinguishing packages 20, the fire-extinguishing packages 20 are adjacent to or in contact with the vehicle battery 10, and the fire-extinguishing packages 20 are filled with a fire-extinguishing agent. When the temperature of the vehicle battery 10 is higher than a preset temperature, the fire-extinguishing package 20 is opened, so that the fire-extinguishing agent can be released and then filled into a space where the vehicle battery 10 is located. Herein, being adjacent or in contact depends on the sensitiveness of the material of the fire-extinguishing package to the preset temperature. In this way, when the vehicle battery 10 is on fire and burnt due to collision, short circuit or other abnormal reasons, the fire-extinguishing agent in the fire-extinguishing package 20 can be released out and then filled into the space where the vehicle battery 10 is located to extinguish the fire, thereby achieving the effects of automatic combustion prevention and fire extinguishing of the vehicle battery 10, effectively protecting the vehicle battery 10 and the whole vehicle, reserving more escape time for passengers and improving the safety of the vehicle. According to the embodiment, the thermal management and automatic fire-extinguishing system of the vehicle battery 10 of the present invention is simple and reliable in structure, low in cost and strong in universality, and is independent from the existing vehicle battery cooling system, and thus the existing vehicle battery cooling system does not need to be reformed.
It can be understood that, for a hybrid vehicle or an electric vehicle, the vehicle batteries 10 are generally arranged in a battery package box body 100 and are connected with each other by a circuit connecting plate to form a battery module, and the vehicle battery 10 per se may be a single battery or a battery pack composed of a plurality of individual batteries.
Return to
In the embodiment as shown in
In the embodiment as shown in
Since silicone oil or transformer oil has good flame retardance and insulation properties at normal temperature and normal pressure, the silicone oil or transformer oil is selected to serve as the fire-extinguishing agent in the present invention. In the case that the fire-extinguishing agent contains impurities or that the fire-extinguishing agent itself is a conductive material, when the fire-extinguishing agent is released and then filled into the space where the battery module 30 is located, instable power supply or fire caused by short circuit of the battery module 30 may be induced. Therefore, in order to reduce the requirements on the purity of the fire-extinguishing agent and the electrical conductivity of the material, in one preferred embodiment of the present invention, insulating layers are arranged on a circuit connecting plate between the battery modules 30 and on a connecting wire between the battery module 30 and an electric element. If the circuit connecting plate itself has an anti-conductive measure, the insulating layer may also be only arranged on the connecting wire, or if the connecting wire is a varnished wire with an anti-conductive function, the insulating layer may be only arranged on the circuit connecting plate. Since acrylic resin has very good temperature resistance, excellent insulation and corrosion resistance property, in one embodiment, the insulating layer is made of the acrylic resin. In other embodiments, the insulating layer may also be made of polyesterimide or polyimide and other materials with insulating property.
In a preferred embodiment, the thermal management and automatic fire-extinguishing system of the vehicle battery according to the present invention may further include a fire monitoring device and a controller. The fire monitoring device is used for monitoring the fire or fire risk of the battery module 30. When the fire monitoring device monitors the fire or fire risk of the battery module 30, the controller enables the lower fire-extinguishing package 22 to execute or accelerate the cooling effect to extinguish or prevent the fire. The controller may be realized by a battery management system (BMS). When at work, the battery management system monitors the temperature of the battery module 30 and the pressure in the upper fire-extinguishing package 21 respectively by a temperature sensor and a pressure sensor in real time. When the temperature of the battery module 30 exceeds the preset temperature and the pressure in the upper fire-extinguishing package 21 is obviously reduced, the battery management system judges that the battery module 30 is on fire or has a relatively large fire risk at this time, and the upper fire-extinguishing package 21 might have started being fluidized to release the fire-extinguishing agent. At this time, the battery management system may send a request signal to a whole vehicle controller, the whole vehicle controller responds to the request signal to control the pump 130 to work more quickly to accelerate the flow of the fire-extinguishing agent in the lower fire-extinguishing package 22, so as to cool the battery module 30. In another embodiment, only the pressure sensor or the temperature sensor may be used as the fire monitoring device, and at this time, whether the battery module 30 is on fire or has the fire risk may be judged according to the temperature of the battery module 30 or the pressure in the upper fire-extinguishing package 21. In other embodiments, other proper monitoring devices, for example, a flame monitoring device, may also be used as the fire monitoring device herein.
In a preferred embodiment, when the upper fire-extinguishing package 21 is used for extinguishing the fire of a single vehicle battery 10, a temperature sensor is arranged on each vehicle battery 10, and a pressure sensor is arranged in each upper fire-extinguishing package 21. In another embodiment, when the upper fire-extinguishing package 21 is used for extinguishing the fire of the battery module 30, a temperature sensor is arranged on each vehicle battery 10, and a pressure sensor is arranged in each upper fire-extinguishing package 21. Alternatively, a temperature sensor is arranged on each battery module 30, a pressure sensor is arranged in each upper fire-extinguishing package 21 for monitoring the temperature of each vehicle battery 10 in the battery module. In another embodiment, when the upper fire-extinguishing package 21 is used for extinguishing the fire of the battery module 30, two types of temperature sensors are provided, wherein one of the two types is a total temperature sensor and is used for monitoring the temperature of all vehicle batteries 10 in the battery module, and the other type of temperature sensor is auxiliary temperature sensors each of which is arranged on a corresponding vehicle battery 10 and is used for monitoring the temperature of the corresponding vehicle battery 10 in the battery module 30. Only when the temperatures monitored by the total temperature sensor and at least one auxiliary temperature sensor monitor exceed the preset temperature, it is regarded as one of fire judging criterions of the battery module 30, and thus the condition that the total temperature sensor or the auxiliary temperature sensor is faulty to get an over high monitored temperature may be prevented. Alternatively, when the temperature of the vehicle battery 10 monitored by the total temperature sensor or at least one auxiliary temperature sensor monitor exceeds the preset temperature, it is regarded as one of the judging criterions of the vehicle battery 10, and thus the condition that the total temperature sensor or the auxiliary temperature sensor is faulty and cannot work can be prevented. According to the monitored fire criterions, if simultaneously having monitored that the pressure in the upper fire-extinguishing package 21 is obviously reduced, the battery management system judges that the vehicle battery 10 is on fire or has a relatively high fire risk, and the upper fire-extinguishing package 21 might have started being fluidized to release the fire-extinguishing agent to the outside. In
So far, those skilled in the art should understand that, although a plurality of exemplary embodiments of the present invention have been shown and described herein in detail, a lot of other variations or modifications conforming to the principle of the present invention can also be directly determined or derived according to the contents disclosed by the present invention, without departing from the spirit or scope of the present invention. Therefore, the scope of the present invention should be understood and deemed as encompassing all of these other variations or modifications.
Patent | Priority | Assignee | Title |
10686173, | Oct 31 2016 | LG ENERGY SOLUTION, LTD | Battery pack comprising fire extinguishing agent |
11613172, | Mar 11 2020 | Hyundai Motor Company; Kia Motors Corporation | Battery release system for vehicle |
11904704, | Mar 11 2020 | Hyundai Motor Company; Kia Motors Corporation | Battery release system for vehicle |
Patent | Priority | Assignee | Title |
4329407, | May 05 1978 | Brown, Boveri & Cie AG | Electrochemical storage battery |
6106972, | Jul 02 1997 | Denso Corporation | Battery cooling system |
7488546, | Jan 04 2006 | LG ENERGY SOLUTION, LTD | Medium- or large-sized battery pack having safety device |
8530069, | Dec 14 2006 | CLARIOS ADVANCED SOLUTIONS LLC | Battery module |
8663828, | Apr 30 2009 | LG ENERGY SOLUTION, LTD | Battery systems, battery module, and method for cooling the battery module |
8733465, | May 22 2013 | BUTLER, RONALD M; FLOOD, GERALD G | Fire suppression system for lithium ion batteries |
9530994, | Dec 15 2008 | HANON SYSTEMS | Heat exchanger for temperature control of vehicle batteries |
20090176148, | |||
20100078182, | |||
20120048577, | |||
20120263885, | |||
20120312562, | |||
20140060859, | |||
20140138103, | |||
CN101740840, | |||
CN102461354, | |||
CN103566508, | |||
CN103825059, | |||
CN1996640, | |||
CN202353190, | |||
CN202366355, | |||
CN202662693, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Dec 23 2014 | ZHEJIANG GEELY AUTOMOBILE RESEARCH INSTITUTE CO., LTD. | (assignment on the face of the patent) | / | |||
Dec 23 2014 | ZHEJIANG GEELY HOLDING GROUP CO., LTD. | (assignment on the face of the patent) | / | |||
Jul 21 2016 | LI, SHUFU | ZHEJIANG GEELY AUTOMOBILE RESEARCH INSTITUTE CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 039515 | /0215 | |
Jul 21 2016 | LI, SHUFU | ZHEJIANG GEELY HOLDING GROUP CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 039515 | /0215 |
Date | Maintenance Fee Events |
Jan 13 2022 | M1551: Payment of Maintenance Fee, 4th Year, Large Entity. |
Date | Maintenance Schedule |
Jul 31 2021 | 4 years fee payment window open |
Jan 31 2022 | 6 months grace period start (w surcharge) |
Jul 31 2022 | patent expiry (for year 4) |
Jul 31 2024 | 2 years to revive unintentionally abandoned end. (for year 4) |
Jul 31 2025 | 8 years fee payment window open |
Jan 31 2026 | 6 months grace period start (w surcharge) |
Jul 31 2026 | patent expiry (for year 8) |
Jul 31 2028 | 2 years to revive unintentionally abandoned end. (for year 8) |
Jul 31 2029 | 12 years fee payment window open |
Jan 31 2030 | 6 months grace period start (w surcharge) |
Jul 31 2030 | patent expiry (for year 12) |
Jul 31 2032 | 2 years to revive unintentionally abandoned end. (for year 12) |